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Novel multi-responsive polymer magnetic microgels with folate or methyltetrahydrofolate ligand as anticancer drug carriers

机译:叶酸或甲基四氢叶酸配体作为抗癌药物载体的新型多响应聚合物磁性微凝胶

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Folate-or L-5-methyltetrahydrofolate-modified poly(ethyleneimine) (PEI) functionalized magnetic microgels (MP-PNAAEF or MP-PNAAEM) for targeted delivery to positive folate-receptor [FR(+)] cancer cells have been successfully prepared. Transmission electron microscopy (TEM) shows that the Fe3O4 nanoparticles are well covered with PNAAEF microgels, exhibiting regular spherical structures with few agglomerates. The mean size of the magnetic microgels measured by dynamic light scattering (DLS) is dependent on temperature and pH, and they exhibit good thermosensitivity as well as pH sensitivity. The research on drug loading and the drug release behavior of magnetic microgels shows that the MP-PNAAEF and MP-PNAAEM microgels are capable of loading more doxorubicin hydrochloride (DOX) than MP-PNAAE under appropriate conditions, and in vitro release is faster at pH 4.5 than at pH 7.4, and faster at 45 °C than at 37 °C. In vitro cytotoxicity of these microgels to Hela cells [FR(+)] and L02 cells [FR(?)] were evaluated, and all microgels were nontoxic up to a concentration of 15 μg mL?1 toward Hela cells and 30 μg mL?1 toward L02 cells. Specifically, the cellular uptake of MP-PNAAE, MP-PNAAEF and MP-PNAAEM was observed with both cell lines. FA and MTHF modification on the MP-PNAAE increased the microgel uptake by Hela cells, but not by the L02 cells, as demonstrated by fluorescence microscopy; thus, the MTHF may possess remarkable properties toward Hela cells. Meanwhile, the DOX-loaded MP-PNAAEF and MP-PNAAEM microgels present greater cytotoxicity to Hela cells than free DOX and DOX-loaded MP-PNAAE microgels. The results suggest that MTHF may represent a potential ligand for targeted anticancer drug delivery, and the MP-PNAAEF and MP-PNAAEM magnetic microgels may represent a potential tumor targeting drug carrier.
机译:叶酸或 L -5-甲基四氢叶酸修饰的聚(乙烯亚胺)(PEI)功能化磁性微凝胶(MP-PNAAEF或MP-PNAAEM),用于靶向递送至正叶酸受体[FR(+)]癌细胞已成功制备。透射电子显微镜(TEM)显示Fe 3 O 4 纳米颗粒被PNAAEF微凝胶很好地覆盖,显示出几乎没有团块的规则球形结构。通过动态光散射(DLS)测量的磁性微凝胶的平均大小取决于温度和pH值,它们具有良好的热敏性和pH敏感性。对磁性微凝胶的载药量和释药行为的研究表明,在适当的条件下,MP-PNAAEF和MP-PNAAEM凝胶能够载有比MP-PNAAE更高的盐酸阿霉素(DOX),并且在体外 释放比在pH 7.4时释放快,在45°C时释放释放比在37°C时快。评估了这些微凝胶对Hela细胞[FR(+)]和L02细胞[FR(α)]的体外细胞毒性,并且当浓度达到15μgmL时,所有微凝胶均无毒。 ?1 指向Hela细胞,30μgmL ?1 指向L02细胞。具体而言,在两种细胞系中均观察到了MP-PNAAE,MP-PNAAEF和MP-PNAAEM的细胞摄取。荧光显微镜显示,MP-PNAAE上的FA和MTHF修饰增加了Hela细胞而非L02细胞吸收微凝胶的能力;因此,MTHF对Hela细胞可能具有显着的特性。同时,DOX负载的MP-PNAAEF和MP-PNAAEM微凝胶对Hela细胞的杀伤力大于游离DOX和DOX的MP-PNAAE微凝胶。结果表明,MTHF可能代表靶向抗癌药物递送的潜在配体,而MP-PNAAEF和MP-PNAAEM磁性微凝胶可能代表潜在的靶向肿瘤的药物载体。

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